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Assessment of nonlinear structural vertical-torsional coupling in cable-supported bridges

机译:电缆支撑桥中非线性结构垂直耦合的评估

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Using simplified mathematical representations of suspension bridges, mathematicians have demonstrated that a vertical dynamic forcing can cause large torsional vibrations due to geometric nonlinearities of the bridge that appear to be a structural dynamic instability. Compared to the extensive research that has been conducted on the dynamic behavior of cable-supported bridges, the approach used by the mathematicians appears too simplistic. This is due to the fact that the dynamic force considered by the mathematicians is approximate compared to actual dynamic loadings on bridges, especially those originating from wind. However, they raise a point that is not considered in the wind design of cable-supported bridges, i.e., a possible nonlinear structural coupling between the modes of vibration that could be detrimental to the bridge performance. Therefore, this paper presents a preliminary investigation of nonlinear vertical-torsional coupling in long-span bridges using a simplified practical approach. The proposed method relies on the finite element method and nonlinear pushover analyses. Using this approach, the nonlinear structural coupling is assessed for the numerical models of five suspension bridges and two cable-stayed bridges. The method allows determining the nonlinear stiffness parameters of equivalent systems having between one and three degrees of freedom (lateral, vertical and torsional). Since the proposed technique relies on the modes of vibration and can account for the interaction between the vertical and torsional effects, it can be used to judge which ones of the bridges considered are likely to be the most susceptible to nonlinear mode coupling under wind loads. The analysis results for the seven bridges shows that the suspension bridge system has a greater nonlinear vertical-torsional coupling in comparison to the cable-stayed system. Additionally, it is demonstrated that the span length has an influence on the vertical-torsional coupling. The results also show that the nonlinear coupling is slightly affected by lateral effects.
机译:使用悬架桥的简化数学表示,数学家已经证明,由于桥的几何非线性,垂直动态强制可能导致大的扭转振动,这似乎是结构性动态不稳定性。与在电缆支持的桥梁的动态行为上进行的广泛研究相比,数学家使用的方法出现了太简单。这是由于数学家考虑的动态力与桥上的实际动态负荷相比,尤其是源自风的实际动态负荷相比。然而,它们提高了在电缆支撑的桥的风设计中不考虑的点,即,在可能对桥接性能有害的振动模式之间的可能的非线性结构耦合。因此,本文介绍了使用简化的实际方法对长跨度桥梁中非线性垂直扭转耦合的初步研究。所提出的方法依赖于有限元方法和非线性推送分析。使用这种方法,评估非线性结构耦合,用于五个悬架桥梁的数值模型和两个缆绳停留的桥梁。该方法允许确定在一个和三个自由度(横向,垂直和扭转)之间的等效系统的非线性刚度参数。由于所提出的技术依赖于振动模式并且可以考虑垂直和扭转效应之间的相互作用,因此可以使用它来判断所考虑的桥的哪一个可能是风载下的非线性模式耦合最容易受到最容易受到的非线性模式耦合的桥梁。七个桥梁的分析结果表明,与缆绳保持的系统相比,悬架桥系统具有更大的非线性垂直扭转耦合。另外,证明跨度长度对垂直扭转耦合有影响。结果还表明,非线性耦合略有受横向效应的影响。

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